Bennett M R, Farnell L, Gibson W G, Macleod G T, Dickens P
The Neurobiology Laboratory, Department of Physiology, Institute for Biomedical Research, University of Sydney, New South Wales 2006, Australia.
Biophys J. 2000 Mar;78(3):1106-18. doi: 10.1016/S0006-3495(00)76669-0.
The release of a quantum from a nerve terminal is accompanied by the flow of extracellular current, which creates a field around the site of transmitter action. We provide a solution for the extent of this field for the case of a quantum released from a site on an amphibian motor-nerve terminal branch onto the receptor patch of a muscle fiber and compare this with measurements of the field using three extracellular electrodes. Numerical solution of the equations for the quantal potential field in cylindrical coordinates show that the density of the field at the peak of the quantal current gives rise to a peak extracellular potential, which declines approximately as the inverse of the distance from the source at distances greater than about 4 microm from the source along the length of the fiber. The peak extracellular potential declines to 20% of its initial value in a distance of about 6 microm, both along the length of the fiber and in the circumferential direction around the fiber. Simultaneous recordings of quantal potential fields, made with three electrodes placed in a line at right angles to an FM1-43 visualized branch, gave determinations of the field strengths in accord with the numerical solutions. In addition, the three electrodes were placed so as to straddle the visualized release sites of a branch. The positions of these sites were correctly predicted on the basis of the theory and independently ascertained by FM1-43 staining of the sites. It is concluded that quantal potential fields at the neuromuscular junction that can be measured with available recording techniques are restricted to regions within about 10 microm of the release site.
神经末梢释放一个量子伴随着细胞外电流的流动,这在递质作用部位周围产生一个场。对于从两栖动物运动神经末梢分支上的一个位点释放到肌肉纤维受体斑片上的一个量子的情况,我们给出了这个场范围的解决方案,并将其与使用三个细胞外电极对该场的测量结果进行比较。圆柱坐标系中量子势场方程的数值解表明,量子电流峰值处的场密度产生一个细胞外电位峰值,在沿着纤维长度方向距离源大于约4微米的距离处,该峰值电位大约以与离源距离的倒数成比例的方式下降。细胞外电位峰值在沿着纤维长度方向以及围绕纤维的圆周方向上,在约6微米的距离内下降到其初始值的20%。用三个电极沿与FM1 - 43可视化分支成直角的直线排列同时记录量子势场,得到的场强测定结果与数值解一致。此外,将这三个电极放置成横跨一个分支的可视化释放位点。这些位点的位置根据该理论被正确预测,并通过对这些位点的FM1 - 43染色独立确定。得出的结论是,用现有记录技术能够测量到的神经肌肉接头处的量子势场局限于释放位点约10微米范围内的区域。